Book a Demo!
CoCalc Logo Icon
StoreFeaturesDocsShareSupportNewsAboutPoliciesSign UpSign In
trixi-framework
GitHub Repository: trixi-framework/Trixi.jl
Path: blob/main/examples/structured_2d_dgsem/elixir_euler_free_stream.jl
5586 views
1
using OrdinaryDiffEqLowStorageRK
2
using Trixi
3
4
###############################################################################
5
# semidiscretization of the compressible Euler equations
6
7
equations = CompressibleEulerEquations2D(1.4)
8
9
initial_condition = initial_condition_constant
10
11
# Up to version 0.13.0, `max_abs_speed_naive` was used as the default wave speed estimate of
12
# `const flux_lax_friedrichs = FluxLaxFriedrichs(), i.e., `FluxLaxFriedrichs(max_abs_speed = max_abs_speed_naive)`.
13
# In the `StepsizeCallback`, though, the less diffusive `max_abs_speeds` is employed which is consistent with `max_abs_speed`.
14
# Thus, we exchanged in PR#2458 the default wave speed used in the LLF flux to `max_abs_speed`.
15
# To ensure that every example still runs we specify explicitly `FluxLaxFriedrichs(max_abs_speed_naive)`.
16
# We remark, however, that the now default `max_abs_speed` is in general recommended due to compliance with the
17
# `StepsizeCallback` (CFL-Condition) and less diffusion.
18
solver = DGSEM(polydeg = 3, surface_flux = FluxLaxFriedrichs(max_abs_speed_naive))
19
20
# Mapping as described in https://arxiv.org/abs/2012.12040, but reduced to 2D
21
function mapping(xi_, eta_)
22
# Transform input variables between -1 and 1 onto [0,3]
23
xi = 1.5 * xi_ + 1.5
24
eta = 1.5 * eta_ + 1.5
25
26
y = eta + 3 / 8 * (cos(1.5 * pi * (2 * xi - 3) / 3) *
27
cos(0.5 * pi * (2 * eta - 3) / 3))
28
29
x = xi + 3 / 8 * (cos(0.5 * pi * (2 * xi - 3) / 3) *
30
cos(2 * pi * (2 * y - 3) / 3))
31
32
return SVector(x, y)
33
end
34
35
cells_per_dimension = (16, 16)
36
37
mesh = StructuredMesh(cells_per_dimension, mapping, periodicity = true)
38
39
semi = SemidiscretizationHyperbolic(mesh, equations, initial_condition, solver;
40
boundary_conditions = boundary_condition_periodic)
41
42
###############################################################################
43
# ODE solvers, callbacks etc.
44
45
tspan = (0.0, 2.0)
46
ode = semidiscretize(semi, tspan)
47
48
summary_callback = SummaryCallback()
49
50
analysis_interval = 100
51
analysis_callback = AnalysisCallback(semi, interval = analysis_interval)
52
53
alive_callback = AliveCallback(analysis_interval = analysis_interval)
54
55
save_solution = SaveSolutionCallback(interval = 100,
56
save_initial_solution = true,
57
save_final_solution = true,
58
solution_variables = cons2prim)
59
60
stepsize_callback = StepsizeCallback(cfl = 2.0)
61
62
callbacks = CallbackSet(summary_callback,
63
analysis_callback, alive_callback,
64
save_solution,
65
stepsize_callback)
66
67
###############################################################################
68
# run the simulation
69
70
sol = solve(ode, CarpenterKennedy2N54(williamson_condition = false);
71
dt = 1.0, # solve needs some value here but it will be overwritten by the stepsize_callback
72
ode_default_options()..., callback = callbacks);
73
74